EP2898752A1 - Netzwerkarchitektur für duale aktive persönliche mobilfunkvorrichtungen - Google Patents

Netzwerkarchitektur für duale aktive persönliche mobilfunkvorrichtungen

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Publication number
EP2898752A1
EP2898752A1 EP13839877.1A EP13839877A EP2898752A1 EP 2898752 A1 EP2898752 A1 EP 2898752A1 EP 13839877 A EP13839877 A EP 13839877A EP 2898752 A1 EP2898752 A1 EP 2898752A1
Authority
EP
European Patent Office
Prior art keywords
persona
vue
bearer
charging
user equipment
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Withdrawn
Application number
EP13839877.1A
Other languages
English (en)
French (fr)
Other versions
EP2898752A4 (de
Inventor
Masoud Sajadieh
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Intel Corp
Original Assignee
Intel Corp
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Intel Corp filed Critical Intel Corp
Publication of EP2898752A1 publication Critical patent/EP2898752A1/de
Publication of EP2898752A4 publication Critical patent/EP2898752A4/de
Withdrawn legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/18Processing of user or subscriber data, e.g. subscribed services, user preferences or user profiles; Transfer of user or subscriber data
    • H04W8/183Processing at user equipment or user record carrier
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/53Allocation or scheduling criteria for wireless resources based on regulatory allocation policies
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/18Processing of user or subscriber data, e.g. subscribed services, user preferences or user profiles; Transfer of user or subscriber data

Definitions

  • Mobile devices are typically owned by individuals or a business
  • enterprise but are generally used for at least business and personal purposes.
  • enterprise applications When used for business needs, specialized enterprise applications are executed. Such applications may also be used for personal use, e.g., email applications. This is especially the case with end devices such as "smart" mobile phones.
  • endpoints such as laptops, tablets, Internet devices, etc., which access similar enterprise services as well as virtualized desktops from a network cloud.
  • a user runs applications, specifies preferences, and is allowed to access resources and files according to local rules. These elements, together with the name-to-resource mappings, can be referred to as a user's computing persona.
  • a user's environment or computing persona is defined on each machine. Each machine has a single computing persona for each user and computing personae for a particular user typically vary from device to device.
  • FIG. 1 illustrates a block diagram of a mobile device according to an embodiment
  • Fig. 2 illustrates a protocol stack between user equipment (UE) and Evolved Node B (eNode-B) according to the LTE standard specifications;
  • UE user equipment
  • eNode-B Evolved Node B
  • Fig. 3 illustrates the use of a Singie-SIM Dual-Active (SSDA) card from the view of the LIE according to an embodiment
  • FIG. 4 illustrates a network architecture for a non-roaming network topology supporting SSDA operation according to an embodiment
  • Fig. 5 illustrates the Policy and Charging Control (PCC) architecture for SSDA according to an embodiment
  • Fig. 6 is a flow chart of a method for providing a network architecture for dual active personae according to an embodiment.
  • UICC Universal ICC
  • SIM subscriber identity module
  • a SIM card is a physically secure device, e.g., an IC card (or “smart card”), that can be inserted and removed from the terminal equipment.
  • a SIM card may be provided with one or more applications. Further, a SIM card may be provided with a dual personality' property enabling additional features including providing dual-active operation for a single, individual user.
  • SIM Dual -Active (SSDA) card provides virtualized user equipment (vUE) that maintains two personalities for dual-persona usage scenarios for a single, individual user, such as a corporate persona and a persona! persona.
  • SSDA card may be implemented by 3rd Generation Partnership Project (3 GPP) Long
  • LTE Long Term Evolution
  • Fig. 1 illustrates a block diagram of a mobile device 100 according to an embodiment.
  • a mobile device 100 may include functions for implementing voice calls, text and multimedia messaging, entertainment, e.g., playback of stored music and FM radio, photography, etc.
  • the mobile device 100 may include a memory subsection 1 10, the display driver circuit 120, the image sensor 122, and the subscriber identity module (SIM) card 124,
  • SIM subscriber identity module
  • the display driver circuit 120 is mapped to the application processor 130 and controls a liquid crystal display (LCD) 132 of the mobile device 100.
  • LCD liquid crystal display
  • an LCD 132 In an LCD 132, light is projected through the layer of liquid crystals and is colorized, which produces the visible image. The liquid crystals do no emit light themselves, so the LCD 132 requires backlight power 134 to i lluminate the LCD 132 from the side or back of the display panel.
  • the touch screen control 136 monitors the screen waiting for a touch. The touch screen control 136 obtains information from the LCD 132 and translates it into information for processing, such as cursor control, right and left clicks, etc.
  • the image sensor 122 is provided to capture photographs and videos by converting an optical image falling on the image sensor 122 into an equivalent electrical signal for processing by application processor 130.
  • the SIM card 124 is a portable memory device that holds personal information of an account holder associated with the SIM card 124, including phone number, address book, text messages, and other data.
  • a SIM card 124 according to an embodiment provides two or more personalities, e.g., Pi 140 and P 2 142, for multi-persona usage scenarios, such as
  • the Single-SIM Dual-Active (SSDA) SIM card 124 allows differentiation between two uses, such as one for social purposes and one for business purposes. This involves a shift in the directional nature of the person to persona relationship.
  • Mobile DRAM 150 is a version of DRAM memory that has been redesigned specifically for use in handheld, battery-powered communication devices, such as mobile phones, with the primary objective of reducing power consumption and extending the device's batter life.
  • Mobile DRAM 150 is also known as Low Power Double Data Rate (LPDDR) RAM.
  • LPDDR Low Power Double Data Rate
  • MCP 152 also known as MCM (multi-chip module), are packages where two or more chips are provided on a unifying substrate to facilitate their use as a discrete component.
  • MCP 1 2 allows more surface mount area on devices.
  • MCP 152 enables the rest of the application to view the memory subsection 110 as a unified "block", letting the memor subsection 110 offer the highest levels of performance for the device.
  • the eMMC 154 is an embedded storage solution with an MMC interface, flash memory and control ler, all in a small surface mount package.
  • the eMMC 154 supports a wide range of applications in consumer electronics, wireless, and navigation.
  • the eMMC 154 provides a host system with access to mass storage memory sub-systems with one common MMC interface protocol bus.
  • Flash cards 156 are a form of nonvolatile flash memory that may be used as removable storage media in mobile devices 100 as diverse as smartphones and other communication devices, digital still/video cameras, and personal media players (PMPs).
  • portable computing devices such as notebook computers, tablets, etc., usually provide interfaces to connect flash cards 156, Flash card 156 features are commonly implemented by an application processor 130.
  • the application processor 130 may be implemented as a SoC
  • the application processor 130 is a microprocessor with a specialized architecture for deployment in embedded systems, such as digital still/video cameras, digital/smart TVs and set-top boxes, and automotive systems, and mobile devices 100.
  • the application processor 130 supports applications running on the mobile device 100 by providing a self-contained operating environment that delivers system capabilities to support a device's applications, including memory management, graphics processing and multimedia decoding.
  • the application processor 130 may be independent from other specialized processors in the same mobile device 100, such as a phone's baseband (wireless communications) processor 160.
  • the baseband processor 160 is programmed specifically for a predetermined baseband, or frequency range, the mobile device 100 is designed to use for communication.
  • the predetermined baseband is the frequency range occupied by a message signal prior to modulation.
  • the baseband processor 160 performs signal processing and implements the device's radio transmission operations.
  • the baseband processor 160 modulates a higher frequency carrier wave with a baseband signal so that the resulting radio frequency (RF) signal may be transmitted via the antenna.
  • the baseband processor 160 also acts to demodulate a received RF signal to extracting the information-bearing baseband signal from a modulated carrier wave.
  • Connectivity module 170 provides for connectivity between other devices using one or more communication technologies such as WiFi 172, radio frequency (RF) 174, Bluetooth 176, GPS 178, etc.
  • the connectivity module 170 and/or the baseband processor 160 may include a plurality of antennas 162 to wirelessly communicate using at least one of single-input multiple-output (SIMO), multiple-input multiple-output (MIMO), or multiple- input single-output (MI SO) techniques.
  • Connectivity module 170 and/or baseband processor 160 may include a single transceiver that is coupled to the plurality of antennas 162.
  • the connectivity module 170 is controlled through the application processor 130 and may use the baseband processor 160 for signal processing.
  • Sensors 180 may also be provided. Sensors 180 that may be embedded include a gyroscope 182, an accelerometer (motion) 184, a digital compass 186, an ambient light sensor 188, proximity sensor 190, etc. Embedded sensors 180 support the creation of personal, group, and community sensing functions.
  • a power management module 192 may be provided to adapt to changes in application load to minimize power consumption from a battery 194 under various operating loads.
  • the power management module 192 may change the state of the device based on a detected activity level. For example, mobile device 100 may transition between a suspended state, an idle state and an active usage state.
  • a codec module 196 provides encoding and decoding for audio and video signals.
  • An audio codec 197 may be provided for encoding and/or decoding audio signals.
  • a video codec 198 may also be provided for processing video signals using video compression or decompression for digital video.
  • the codec module 196 encodes data streams or signals for transmission, storage or encryption, or decodes signals for playback or editing.
  • One or more of the techniques (e.g., methodologies) discussed herein may be implemented by the application processor 130. Further, while a single application processor 130 is illustrated, any collection of processors may individual ly or jointly execute a set (or multiple sets) of instructions to perform any one or more of the methodologies discussed herein, such as cloud computing, software as a sendee (SaaS), other computer cluster configurations.
  • Examples, as described herein, may include, or may operate on, logic or a number of components, modules, or mechanisms. Modules are tangible entities (e.g., hardware) capable of performing specified operations and may be configured or arranged in a certain manner.
  • circuits may be arranged (e.g., internal!)' or with respect to external entities such as other circuits) in a specified manner as a module.
  • one or more computer systems e.g., a standalone, client or server computer system
  • one or more hardware processors e.g., application processor 130
  • firmware or software e.g., instructions, an application portion, or an application
  • Embodiments may be practiced via a system-on-a-chip (SOC) where each or many of the components illustrated in Fig. 1 may be integrated onto a single integrated circuit.
  • SOC system-on-a-chip
  • Such an SOC device may include one or more processing units, graphics units, communications units, system virtualization units and various application functionality which may be integrated (or
  • Embodiments may also be practiced using other technologies capable of performing logical operations such as, for example, AND, OR, and NOT, including but not limited to mechanical, optical, fluidic, and quantum technologies.
  • embodiments may be practiced within a general purpose computer or in any other circuits or systems.
  • Software may reside on a machine readable medium. In an example, the software, when executed by the underlying hardware of the module, causes the hardware to perform the specified operations.
  • module is understood to encompass a tangible entity, be that an entity that is physically constructed, specifically configured (e.g., hardwired), or temporarily configured (e.g., programmed) to operate in a specified manner or to perform part or all of any operation described herein.
  • each of the modules need not be instantiated at any one moment in time.
  • the modules comprise a hardware processor configured using software
  • the hardware processor may be configured as respective different modules at different times.
  • Software may accordingly configure a hardware processor, for example, to constitute a particular module at one instance of time and to constitute a different module at a different instance of time.
  • Storage medium may include one or more storage memories included in the memory subsection 1 10, which provide a machine readable storage medium 158 on which is stored one or more sets of data structures or instructions 159 (e.g., software) embodying or utilized by any one or more of the techniques or functions described herein.
  • the instructions 159 may also reside, completely or at least partially, within the any storage memory included in the memory subsection 1 10 or within a hardware processor, such as application processor 130, during execution thereof by the application processor 130.
  • machine readable storage medium 158 is illustrated as a single medium, the term “machine readable medium” may include a single medium or multiple media (e.g., a centralized or distributed database, and/or associated caches and servers) configured to store the one or more instructions 159.
  • machine readable medium may include a single medium or multiple media (e.g., a centralized or distributed database, and/or associated caches and servers) configured to store the one or more instructions 159.
  • machine readable storage medium may include any medium that is capable of storing, encoding, or carrying instructions 159 for execution by the application processor 130 and that cause the application processor 130 to perform any one or more of the techniques of the present disclosure, or that is capable of storing, encoding or carrying data structures used by or associated with suc instructions 159.
  • the mstructions 159 may further be transmitted or received over a communications network through baseband processor 160 utilizing any one of a number of transfer protocols (e.g., frame relay, internet protocol (IP), transmission control protocol (TCP), user datagram protocol (UDP), hypertext transfer protocol (HTTP), etc. ).
  • transfer protocols e.g., frame relay, internet protocol (IP), transmission control protocol (TCP), user datagram protocol (UDP), hypertext transfer protocol (HTTP), etc.
  • Example commumcation networks may include a local area network (LAN), a wide area network (WAN), a packet data network (e.g., the Internet), mobile telephone networks (e.g., cellular networks such as Global System for Mobile Communications (GSM), Universal Mobile Telecommunications System (UMTS), CDMA 2000 lx* standards and Long Term Evolution (LTE)), Plain Old Telephone (POTS) networks, and wireless data networks (e.g., Institute of Electrical and Electronics Engineers (IEEE) 802.11 family of standards known as Wi-Fi®, IEEE 802.16 family of standards known as WiMax®), peer-to-peer (P2P) networks, or other protocols now known or later developed.
  • GSM Global System for Mobile Communications
  • UMTS Universal Mobile Telecommunications System
  • LTE Long Term Evolution
  • POTS Plain Old Telephone
  • wireless data networks e.g., Institute of Electrical and Electronics Engineers (IEEE) 802.11 family of standards known as Wi-Fi®, IEEE 802.16 family of standards known as WiMax®
  • FIG. 2 illustrates a protocol stack 200 between user equipment
  • Layer 1 230, Layer 2 220 and Layer 3 210 set the services to organize the information to transmit through logical channels whose classifying parameter is the nature of the information they cam' (i.e., control or traffic information) and map these logical channels into transport channels whose classifying parameter is how and with what characteristic the information within each logical channel is transmitted over the radio interface.
  • Each of Layer 1 230, Layer 2 220 and Layer 3 210 are characterized by the services provided to the higher layers or entities and the functions that support them.
  • LTE channels may be categorized into three types of data channels.
  • a logical channel 240 is defined by the type of information it carries.
  • the logical channel 240 is classified into control and traffic channels.
  • the transport channel 242 is defined by how and with what characteristics the information is transmitted.
  • the physical channel 244 is defined by the physical resources used to transmit the data. Transport channels 242 are mapped onto physical channels 244.
  • Data channels 240, 242, 244 are further divided into control channels and traffic channels.
  • the traffic channels cany information of the user-plane 246, whil e the control channels carry information of the control- plane 248.
  • the radio bearer channel 270 transports the packets of an evolved packet system (EPS) bearer, e.g., QoS (Quality of Sendee) flows, between a UE 250 and an eNode-B 260.
  • EPS evolved packet system
  • QoS Quadrum of Sendee
  • the eNode-B provides LTE network access to the UE 250.
  • the UE 250 may be a wireless device, such as a cellular telephone.
  • LTE Layer 3 210 includes the Radio Resource Control (RRC) layer 212.
  • the RRC layer 212 provides broadcast of system information; configures the Medium Access Control (MAC) 222, Radio Link Control (RLC) 224 and Packet Data Convergence Protocol (PDCP) 226 layers; carries out mobility functions and QoS management functions. Further, the RRC 212 is responsible for control plane signaling between UE 250 and the network. The RRC 212 takes care of the broadcasted system informati on related to the access stratum and transport of the non-access stratum (NAS) 214 messages, paging, establishment and release of the RRC 212 connection, security key management, handover, UE 250 measurements related to inter-system mobility, QoS, etc.
  • NAS non-access stratum
  • the NAS 214 provides communication between the UE 250 and the mobility management entity (MME) on the network side (not shown) for control purposes, such as network attach, authentication, establishing and setting up bearers, and mobility management.
  • MME mobility management entity
  • the NAS 214 also performs authentication of the UE 250 and security control and generates part of the paging messages.
  • Layer 3 210 interfaces with layer 2 220 and also directly interfaces with layer 1 230.
  • Layer 2 220 is split into the Media Access Control (MAC) 222, RLC 224 and PDCP 226.
  • the MAC 222 provides addressing and channel access control mechanisms.
  • the MAC 222 also manages hybrid automatic repeat request (HAR.Q) error correction, prioritization of the logical channels for the same UE 250 and dynamic scheduling between UEs 250, etc.
  • HAR.Q hybrid automatic repeat request
  • the RLC 224 is used to format and transport traffic. Further, the RLC 224 transports the PDUs of the PDCP 226 and may work in one of three different modes depending on the reliability provided. Depending on this mode, the RLC 224 can provide automatic repeat query (ARQ) error correction,
  • ARQ automatic repeat query
  • the PDCP 226 is responsible for (de ⁇ ) compressing the headers of IP packets of the user plane.
  • the PDCP 226 provides transport of data of the RRC 212 with ciphering and integrity protection and for the IP layer transport of the IP packets, with robust header compression (ROHC) header compression, ciphering, and, depending on the mode of the RRC 212, in- sequence delivery, duplicate detection, and retransmission of its own sendee data units (SDUs) during handover.
  • Layer 1 230 is the physical (PHY) layer 232 and provides the basic networking hardware transmission technologies of a network.
  • the PHY layer 232 translates logical communication requests into hardware specific operations such as modulation, bit synchronization, multiplexing, equalization, forward error correction etc.
  • the PHY layer 232 carries information from the transport channels 242 of the MAC 222 over the air interface, and handles the link adaptation adaptation modulation and coding (AMC), power control, cell search (for initial synchronization and handover purposes), and other
  • Fig. 3 illustrates the use of a Singie-SIM Dual-Active (SSDA) card 300 from the view of the multiple persona user equipment (MP UE) 320 according to an embodiment.
  • SSDA Singie-SIM Dual-Active
  • MP UE multiple persona user equipment
  • a long term evolution (LTE) protocol stack 310 is maintained in memory 302 to define a layered data structure for transmitting and receiving data.
  • a single, individual user may have at least a first persona and a second persona, wherein the first persona may be a corporate persona and the second persona may be for personal use.
  • LTE long term evolution
  • a multiple persona (MP) universal subscriber identification module (SIM) 322 in a multiple persona user equipment (MP UE) 320 provides data for implementing at least the first persona and the second persona for a single, individual user on a mobile device 100, such as the MP UE 320.
  • MP multiple persona
  • SIM subscriber identification module
  • a processor such as an applications processor 324, implements, via the LTE protocol stack 352, first virtual user equipment (vUEi ) 350 associated with the first persona.
  • Second virtual user equipment (vUE 2 ) 360 associated with the second persona is implemented via LTE protocol stack 362.
  • the application processor 324 also provides communication using the
  • Transmission Control Protocol/Internet Protocol (TCP/I ) protocol 326 By leveraging physical LTE protocol stack 310 and a Multiple-Persona (MP) USIM (Universal Subscriber Identity Module) 322, separate domains may be served for two or more personalities, in Fig. 3, a corporate domain 340 and a personal domain 342 having applications 344, 346 served by the MP-USIM 322.
  • personalities are activated and can communicate to their respective IP domains. Simultaneous operation may be supported with one transceiver (RF and modem) on the UE 320. This means the same UE 320 is used to serve the personae concurrently.
  • MP USIM Multiple-Persona USIM
  • MP USIM 322 is used for accessing services provided by mobile networks, which the applications 344, 346 are able to register with using the appropriate security.
  • a single MP USIM 322 implies the same IMS! (International Mobile Subscriber Identity) for each persona.
  • the IMSI is a globally-unique code number that identifies a subscriber to the network.
  • the IMSI is linked to user account information with the carrier.
  • the IMSI resides in the MP USIM card 322, which can be moved from one mobile terminal to another.
  • Radio QoS (Quality of Service) requests of applications spawned by each persona are managed in light of the significance and precedence of the multiple personae. Individual charging and billing are also supported for each persona so that charging and billing records may be provided. SSDA is neutral to various operating systems, and infrastructure -based security and protection solutions.
  • the LTE protocol stack 310 includes PDCP layer 312, RFC layer
  • the application processor 324 is able to sendee a first virtual user equipment (vUEi) 350 through first virtual LTE protocol stack 352 and a second virtual user equipment (vUE 2 ) 360 through a second virtual LTE protocol stack 362.
  • Fig. 4 illustrates a network architecture for a non-roaming network topology supporting SSDA operation 400 according to an embodiment.
  • MP UE 410 is shown communicating with eNode-B 420.
  • MP U E 410 is one physical device.
  • the eNode-B 420 is coupled to a mobility management entity (MME) 430 that provides bearer management functions to manage the control plane functions related to subscriber and session management. From that perspective, the MME 430 supports security features, e.g., end-user
  • the MME 430 is coupled to a HSS (Home Subscriber Server) 432, a database that includes user subscription information, such as user identification and addressing and user profile information such as service subscription states and user-subscribed QoS information.
  • HSS Home Subscriber Server
  • the HSS 432 also generates security information from user identity keys for communication to entities in the network. The security information may be used for mutual network-terminal authentication and radio pat ciphering and integrity protection to ensure data and signaling transmitted between the network and the terminal is neither eavesdropped nor altered.
  • the eNode-B 420 and the MME 430 are coupled to a serving gateway (S-GW) 440.
  • the S-GW 440 includes circuitry 442 for establishing a termination point of the packet data interface towards the Evolved Universal Terrestrial Radio Access Network (E-UTRAN), e.g., the eNode-B providing the user plane and the control plane protocol termination towards the MP UE 410.
  • E-UTRAN Evolved Universal Terrestrial Radio Access Network
  • the circuitry 442 of S-GW 440 also provides for inter-eNode handovers.
  • the S- GW 440 selves as a local mobility anchor so that packets are routed through.
  • the S-GW 440 is coupled to at least a first packet data network (PDN) gateway (P-GWi) 450 and a second PDN gateway (P-GW 2 ) 452.
  • PDN gateways 450, 452 support packet filtering and policy enforcement features that apply operator-defined rules for resource allocation and usage.
  • a first Policy and Charging Rules Function (PCRFj) node 460 is coupled to P-GWs 450 and second PCRF 2 node 462 is coupled to P-GW 2 452.
  • the first and second PCRFs 460, 462 manage sendee policy and sends QoS setting information and accounting rule information for each user session.
  • the PCRFs 460, 462 provide operator-defined charging rales applicable to each sendee data flow.
  • P-GWi 450 is coupled to a virtual private network (VPN) 470, e.g., a corporate network, and P ⁇ GW 2 452 is coupled to the Internet 472.
  • VPN virtual private network
  • interfaces between different nodes are labeled with association to the two personalities, PI 480, and P2 482.
  • the prevalent mode of dual-use corporate/personal is based on connecting to two separate packet domains, e.g., the VPN 470 for the corporate partition and public Internet 472 for the personal partition.
  • SSDA can support an IP domain for each persona.
  • Fig. 5 illustrates the Policy and Charging Control (PCC) architecture for SSDA 500 according to an embodiment.
  • Per PDN charging capability of LTE enables tracking of persona usage. Even with one PDN, charging based on service data flows may be used to achieve per persona charging.
  • user equipment (UE) 510 using a SSDA is coupled to an eNode-B 520.
  • the eNode-B 520 is coupled to a serving gateway (S-GW) 540.
  • S-GW 540 is the termination point of the packet data interface towards E-UTRAN.
  • the S-GW 540 is coupled to at least a first packet data network (PDN) gateway (P ⁇ GWi) 550 and a second PDN gateway (P-GW 2 ) 552.
  • PDN packet data network
  • P ⁇ GWi packet data network gateway
  • P-GW 2 PDN gateway
  • the S-GW 540 forwards data packets associated with UE 510 to P-GWi 550 and to P-GW 2 552.
  • P ⁇ GW 3 550 and to P-GW 2 552 support packet filtering and policy enforcement features that apply operator- defined rules for resource allocation and usage.
  • a first Policy and Charging Rules Function (PCRFj) node 560 is coupled to P-GWj 550 and second PCRF 2 node 562 is coupled to P-GW 2 552.
  • PCRF I 560 and PCRF 2 562 manage service policy and provide accounting information and QoS setting information for each user session.
  • P-GWi 550 is coupled to a virtual private network (VPN) 570, e.g., a corporate network, and P- GW 2 552 is coupled to the Internet 572.
  • the Home Subscriber Server (HSS) 432 is the main database of the long term evolution ( LTE) evolved packet core (EPC) storing subscriber information.
  • LTE long term evolution
  • EPC evolved packet core
  • This information includes static profiles, including identification information and dynamic information related to each Packet Data Network (PDN) context that the subscriber has established.
  • the HSS 532 also maintains the Subscriber Profile Repository (SPR) 534.
  • PCRF; 560 and PCRF 2 562 have access to subscriber profiles stored in the SPR 534.
  • PCRFi 560 and PCRF 2 562 download a subscriber profile from the H88 532/SPR 534 for the policy decision to be enforced.
  • P-GWi 550 and P-GW 2 552 each include an interface (I/F) 555, 556 configured to communicate with a serving gateway (S-GW) 540 serving the SSDA UE 510 having a multiple persona (MP) SIM 506 providing a first persona 516 and a second persona 51 8, a policy and charging enforcement function (PCEF) entity, PCEFj 580, PCEF 2 582, configured to enforce gating and QoS and to provide usage measurement to support charging, and a bearer establishment process unit (BEPU), BEPUj 553, BEPU 2 554, coupled to interface 555, 556.
  • BEPUi 553 and BEPU 2 554 are configured to implement, via an LTE protocol stack, a first default bearer DB-.
  • PCEFi 580 and PCEF? 582 enforce gating and QoS for individual IP flows on the behalf of PCRFi 560 and PCRF? 562, respectively, and provide usage measurement to support charging.
  • PCEFi 580 and PCEF 2 582 work with charging systems 583, 584, 585, 586.
  • a first and second Online Charging System (OCSi, 583, OCS 2 585) for credit management exchange related charging information with first and second Offline Charging Systems (OFCSi 584, OFCS 2 586).
  • Application level session information is exchanged between PCRFi 560 and PCRF 2 562 and first and second application functions (AFi 590, AF 2 592) using SIP -based session management.
  • AF ⁇ 590 and AF 2 592 offer access points for service applications and provide flow based charging and sendee related information for policy control of first IP bearer resources associated with the first persona 16 of the first virtual user equipment, vUE] 512, and second IP bearer resources associated with the second persona 518 associated with the vUE? 514.
  • the S-GW 540 provide charging rules and authorization information to the S-GW 540 for enforcement of IP bearer resources for the first persona 516 associated with the vUEj 512 and the second persona 518 associated with vUE 2 514.
  • properly authorized resources are available to vUEi 512 and vUE 2 514 for session-based sendees.
  • a user interface command is activated on UEj 512 and vUE? 514 via a first persona 516 and second persona 518, respectively.
  • a first session is negotiated by vUEi 512 for accessing a virtual private network (VPN) 570, such as a corporate network.
  • a second session is negotiated by vUE 514 for accessing the Internet 572.
  • Each of the sessions are set up with AFj 590 and AF ?
  • AF ' i 590 and AF 2 592 obtain service information associated with vUEj 512 and vUE 2 514 from a personal profile on the MP SIM 506 of the SSDA UE 510.
  • AFi 590 transfers related service information obtained from vUEi 512 to PCRFi 560 so PCRFi 560 can set PCC (Policy and Charging Control) or QoS (Quality of Service) policy for the first persona Pj 516.
  • AF 2 592 transfers related service information obtained from vUE 2 14 to PCRF? 562 so PCRF 2 562 can set PCC (Policy and Charging Control) or QoS (Quality of Service) policy for second persona P 2 51 8.
  • PCRF-. 560 obtains subscriber information associated with the first persona, Pi 596, from Subscription Profile Repository (SPR) 534 of the HSS 532.
  • the SPR 534 stores subscription-based policy information and bearer level charging rules for access by the first and second PCRF entities 560, 562.
  • PCRF 2 562 obtains subscriber information associated with the second persona, P 2 597, from SPR 534 of the HSS 532. Based on the obtained subscriber information, PCRFi 560 and PCRF 2 562 either accept the negotiation between vUEj 512 and AF f , 590 and between vUE 2 514 and AF 2 592, respectively, or provide acceptable parameters via feedback to vUEi 512 and vUE 2 514.
  • PCEFi 560 Policy and Charging Enforcement Functions
  • PCRFj 560 can implement control functions just by interfacing with P- GWi 550 and PC * R ! ' ⁇ 562 can implement control functions just by interfacing with P-GW 2 552.
  • PCEFi 560 is coupled through the offline charging system (OFCSi) 584 and/or online charging system (OCSi) 583, and PCEF 2 562 is coupled to the OFCS 2 586 and/or OCS 2 585.
  • PCEFj 580 and PCEF 2 582 perform the QoS authorization in accordance with the rules sent by PCRFj 560 and PCRF 2 562, and perform the gating control in accordance with the enforcement of AFi 590 and AF 2 592.
  • PCEF, 580 and PCEF 2 582 enforce the corresponding charging operation of the service data flow, and the charging is either online charging or offline charging, if the charging is the online charging, PCEFi 580 performs credit management with OCSi 583 and PCEF 2 582 performs credit management with OCS 2 585 based on time, traffic volume or chargeable events.
  • P-GWj 550 then provides vUEi 512 gateway access to the packet data network, i.e., the virtual private network (VPN) 570, such as a corporate network.
  • P-GW 2 552 provides vUE 2 514 gateway access to the packet data network, i.e., the Internet 572.
  • VPN virtual private network
  • an SSDA UE 510 supports multiple P-GW connections.
  • one PCRF entity can serve P-GWj . 550 and P-GW 2 552.
  • S-GW 540 aggregates signaling, control and media traffic from P-GW) 550 and P-GW 2 552 and routes to the eNode-B 520 associated with the SSDA UE 510.
  • each persona may communicate through the same public land mobile network (PLMN) (not shown).
  • PLMN public land mobile network
  • the SIM 506 of the SSD A UE 510 stores the same PLMN list and during the system acquisition phase, SSDA UE 510 retrieves the PLMN ID for each persona.
  • Separate default bearers, DBi 522, DB 2 524 may be set up for P-GWi 550 and P-GW 2 552 to provide for the possibility of always-on IP connectivity of each persona, Pj 516, P 2 518, e.g., simultaneous IP connectivity.
  • SSDA supports UE -initiated connectivity establishment. The procedure leads to establishment/modification/release of separate bearers, DBi 522, DB 2 524, per PDN, each associated with its respective persona, Pj 516, P 2 518.
  • Fig. 6 is a flow chart 600 of a method for providing a network architecture for dual active personae according to an embodiment.
  • a long term evolution (LTE) protocol stack is maintained in memory for defining a layered data structure for transmitting and receiving data 610.
  • a single subscriber identification module provisions a first persona and a second persona 620.
  • First virtual user equipment associated with the first persona and second virtual user equipment associated with the second persona are implemented via the LTE protocol stack 630.
  • LTE long term evolution
  • embodiments may include l ess than all features of those disclosed in a particular example.
  • the following claims are hereby incorporated into the Detailed Description, with each claim standing on its own as a separate embodiment.
  • the scope of the embodiments disclosed herein should be determined with reference to the appended claims, along with the full scope of equivalents to which such claims are entitled.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Databases & Information Systems (AREA)
  • Mobile Radio Communication Systems (AREA)
EP13839877.1A 2012-09-24 2013-06-06 Netzwerkarchitektur für duale aktive persönliche mobilfunkvorrichtungen Withdrawn EP2898752A4 (de)

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US13/625,127 US9014091B2 (en) 2012-09-24 2012-09-24 Network architecture for dual active personae cellular mobile devices
PCT/US2013/044507 WO2014046748A1 (en) 2012-09-24 2013-06-06 Network architecure for dual active personae cellular mobile devices

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US20140086154A1 (en) 2014-03-27

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